MCM ecological flexible tile production line
Patent Information
- Application Number
- CN202522144955.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-10-10
AI Technical Summary
但这类设备往往存在上浆厚度难以精确控制、浆料内部容易产生气泡、背网铺设不平整或与浆料结合不牢等问题,影响了最终产品的质量和强度
[0017]本实用新型的一种MCM生态柔性瓷砖生产线,通过环形成型模具在输送带上的循环运动,结合各功能组件的协同作业,将上料、摊平、铺网、烘干、切割等工序整合为一条连续的生产线,实现了连续化自动化生产,大幅提高了生产效率。为了保证了产品质量,还采用储料上浆结合动态补料与摊平的设计,确保了浆料上料的稳定性和摊平的均匀性,有效消除了气泡,使成品厚度一致、结构密实、表面平整,显著提升了产品的一致性和力学性能。
Smart Images

Figure CN224738512U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of flexible ceramic tile production equipment technology, and in particular to an MCM eco-friendly flexible ceramic tile production line. Background Technology
[0002] Flexible ceramic tiles are a new type of environmentally friendly building decoration material made primarily from modified clay (MCM) and formed through low-temperature baking. They offer advantages such as lightweight, high flexibility, high degree of appearance simulation, and convenient construction. Traditional flexible ceramic tile production often employs an intermittent flat mold forming process, where slurry is manually or mechanically injected into a static flat mold, leveled, a mesh laid, and then placed in an oven. This production method suffers from low efficiency, large footprint, reliance on worker experience for slurry uniformity, and poor product consistency.
[0003] In existing technologies, some equipment attempts to achieve continuous production, such as using conveyor belts and material troughs for slurry application. However, such equipment often suffers from problems such as difficulty in precisely controlling the slurry thickness, the easy formation of air bubbles within the slurry, uneven backing mesh installation, or weak bonding with the slurry, affecting the quality and strength of the final product. Therefore, there is an urgent need in this field for a high-quality flexible ceramic tile production line that can achieve automated, continuous production and ensure uniform thickness, dense structure, and strong bonding with the backing mesh. Summary of the Invention
[0004] This utility model aims to solve at least one of the technical problems mentioned above, and provides an MCM eco-friendly flexible ceramic tile production line that integrates processes such as feeding, leveling, mesh laying, drying, and cutting into a continuous production line, realizing continuous and automated production.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] An MCM eco-friendly flexible ceramic tile production line includes a batching unit for preparing flexible ceramic tile slurry; a conveyor belt on which an annular forming mold is rotatably mounted; a slurry storage and application assembly located at the input end of the conveyor belt, the slurry storage and application assembly enabling the annular forming mold to form a slurry storage and application trough, allowing the slurry to be applied onto the conveyed annular forming mold; and a material spreading and evenly spreading assembly. The conveyor belt has a mounting frame at the output end of the slurry application assembly, the mounting frame having a lateral drive component whose output end can reciprocate along the length of the mounting frame, and the output end of the lateral drive component having a nozzle... The system includes a grouting head and a spreading head. The input end of the grouting head is connected to the output end of the batching unit, and the output end can inject grout into the grouting tank. The lower end of the spreading head can be inserted into the flexible ceramic tile grout layer on the annular forming mold. A mesh spreading and leveling assembly is located at the output end of the conveyor belt, and is used to lay the back mesh into the flexible ceramic tile grout layer on the annular forming mold. A drying box is located at the output end of the conveyor belt. A cutting table is located at the output end of the conveyor belt and can receive and cut the flexible ceramic tiles output from the drying box.
[0007] As an improvement to the above technical solution, the batching unit includes a dry material feeding unit, a dry material premixing tank, a wet material feeding unit, and a mixer. The output end of the dry material feeding unit is connected to the input end of the dry material premixing tank. The output ends of both the dry material premixing tank and the wet material feeding unit are connected to the input end of the mixer. The output end of the mixer is connected to the input end of the grouting head.
[0008] As an improvement to the above technical solution, the material storage and sizing assembly includes a roller frame set on the input end of the conveyor belt. The roller frame is rotatably mounted with pressure rollers on both sides of the conveyor belt. The two sets of pressure rollers can press down on both sides of the annular forming mold to form a material storage and sizing trough. The conveyor belt is provided with support rollers on both sides of the pressure rollers.
[0009] As an improvement to the above technical solution, a rotating shaft is rotatably installed on the lower end of the roller frame and at a position between the two sets of pressure rollers. A swing rod is provided on the rotating shaft, and a uniform rod that can extend into the slurry storage tank is provided on the lower end of the swing rod.
[0010] As an improvement to the above technical solution, the transverse drive component includes a slide rail mounted on a mounting frame, a sliding seat slidably mounted on the slide rail, and a drive motor mounted on the sliding seat. The mounting frame is provided with a rack, and the output end of the drive motor is provided with a gear that meshes with the rack. The sliding seat is provided with a grouting frame and a spreading frame on both sides. The grouting head is located on the grouting frame, and the spreading head is located on the spreading frame.
[0011] As an improvement to the above technical solution, the spreading head includes an elastic rod provided on the lower end of the spreading frame, and a uniform material rod is provided on the lower end of the elastic rod. The uniform material rod can be inserted into the flexible ceramic tile slurry layer on the annular forming mold.
[0012] As an improvement to the above technical solution, the net-laying and material-leveling assembly includes a net-laying roller wound with a back net. The conveyor belt is provided with a support at the output end of the fabric spreading assembly. The net-laying roller is rotatably mounted on the support. A roller shaft is rotatably mounted on the support at the back net output end of the net-laying roller. Rollers are provided at both ends of the roller shaft. The roller shaft can cooperate with the annular forming mold to roll the back net released by the net-laying roller.
[0013] As an improvement to the above technical solution, a peeling head is also included. The peeling head is installed on the output end of the conveyor belt via a peeling frame. The end of the peeling head can abut against the outer surface of the annular forming mold to peel off the dried molded flexible ceramic tile from the annular forming mold.
[0014] As an improvement to the above technical solution, the cutting table includes a base frame, on which a conveyor frame is movably mounted. A longitudinal cutting mechanism is provided at the input end of the conveyor frame, and at least two sets of positioning mechanisms are spaced apart along the conveying direction on the conveyor frame. A transverse cutting mechanism is provided on the conveyor frame between two adjacent sets of positioning mechanisms and at the output end of the longitudinal cutting mechanism.
[0015] As an improvement to the above technical solution, slide rails are provided on both sides of the base frame along its length, and the conveyor frame is mounted on the slide rails via sliding seats.
[0016] Compared with the prior art, the beneficial effects of this application are:
[0017] This utility model discloses an MCM eco-friendly flexible ceramic tile production line. Through the cyclical movement of a ring-shaped forming mold on a conveyor belt, combined with the coordinated operation of various functional components, it integrates processes such as feeding, leveling, mesh laying, drying, and cutting into a continuous production line, achieving continuous and automated production and significantly improving production efficiency. To ensure product quality, a design combining material storage and slurry application with dynamic replenishment and leveling is adopted. This ensures the stability of slurry application and the uniformity of leveling, effectively eliminating air bubbles, resulting in a finished product with consistent thickness, dense structure, and a smooth surface, significantly improving product consistency and mechanical properties. Attached Figure Description
[0018] The specific embodiments of this utility model will be further described in detail below with reference to the accompanying drawings, wherein:
[0019] Figure 1 This is a schematic diagram of the structure of an embodiment of the present utility model;
[0020] Figure 2 This is a top view of an embodiment of the present utility model;
[0021] Figure 3 This is a schematic diagram of the ingredient dispensing unit in an embodiment of the present invention;
[0022] Figure 4 This is a schematic diagram of the material storage and sizing assembly in an embodiment of the present invention;
[0023] Figure 5 This is a schematic diagram of the structure of the material storage and sizing component and the fabric spreading component in the embodiments of this utility model;
[0024] Figure 6 This is a schematic diagram of the structure of the mesh-feeding and material-leveling assembly in an embodiment of this utility model;
[0025] Figure 7 This is a schematic diagram of the cutting table in an embodiment of the present invention. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0027] It should be noted that when a component is described as "fixed to" another component, it can be directly on the other component or may have a central component. When a component is described as "connected to" another component, it can be directly connected to the other component or may have a central component. When a component is described as "set on" another component, it can be directly set on the other component or may have a central component. When a component is described as "set in the middle," it is not simply set in the exact center, as long as it is not set within the area defined by both ends being in the middle. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0029] like Figures 1 to 7 As shown, this utility model provides an MCM eco-friendly flexible ceramic tile production line, including a batching unit 10 for preparing flexible ceramic tile slurry; a conveyor belt 20 on which an annular forming mold 21 is rotatably mounted; a slurry storage and application assembly 30, which is disposed at the input end of the conveyor belt 20, the slurry storage and application assembly 30 enabling the annular forming mold 21 to form a slurry storage and application trough 31, so that the slurry is applied to the annular forming mold 21 through which it is conveyed; and a material spreading and evenly spreading assembly 40, wherein the conveyor belt 20 is provided with a mounting frame 41 at the output end of the slurry application assembly 30, and the mounting frame 41 is provided with a transverse drive member 42 whose output end can reciprocate along the length direction of the mounting frame 41, the transverse drive member 42... The outlet is equipped with a grouting head 43 and a spreading head 44. The input end of the grouting head 43 is connected to the output end of the batching unit 10, and the output end can inject grout into the grouting tank 31. The lower end of the spreading head 44 can be inserted into the flexible ceramic tile grout layer on the annular forming mold 21. A net-laying and leveling assembly 50 is set at the output end of the conveyor belt 20, and is used to lay the back net into the flexible ceramic tile grout layer on the annular forming mold 20. A drying box 60 is set at the output end of the conveyor belt 20, and a cutting table 70 is set at the output end of the conveyor belt 20, and can receive and cut the flexible ceramic tiles output from the drying box 60.
[0030] The surface of the annular forming mold 21 can have different textures according to product requirements, and it can rotate continuously between various workstations with the conveyor belt 20 to realize continuous flexible ceramic tile production. This is existing technology. For details, please refer to the prior art disclosed in the patent number CN201721694131.X, which is a conveyor belt mold for a flexible ceramic tile production line.
[0031] See Figure 3In a preferred embodiment, the batching unit 10 includes a dry material supply unit 11, a dry material premixing tank 12, a wet material supply unit 13, and a mixer 14. The output end of the dry material supply unit 11 is connected to the input end of the dry material premixing tank 12. The output ends of both the dry material premixing tank 12 and the wet material supply unit 13 are connected to the input end of the mixer 14. The output end of the mixer 14 is connected to the input end of the grouting head 41. The batching unit 10 serves as the starting point of production and is responsible for providing uniformly mixed flexible ceramic tile slurry. Both the dry material premixing tank 12 and the mixer 14 are equipped with stirring mechanisms for mixing materials, which is a conventional existing technology. Dry materials such as MCM masterbatch and powder are fed into the dry material premixing tank 12 via the dry material feeding unit 11 for initial mixing. Then, they are combined with liquid components, such as water and emulsions, from the wet material feeding unit 13 and fed into the mixer 14 for thorough mixing to form a uniform slurry. The prepared slurry is then pumped to the injection head 43 of the spreading assembly 40. The batching unit 10 ensures precise proportioning and thorough mixing of raw materials, providing a qualified slurry for subsequent molding.
[0032] See Figure 4 In a preferred embodiment, the material storage and sizing assembly 30 includes a roller frame 31 disposed on the input end of the conveyor belt 20. Each roller frame 31 is rotatably mounted with abutment rollers 32 on both sides of the conveyor belt 20. The two sets of abutment rollers 31 can press downwards against both sides of the annular forming mold 21, thereby forming a material storage and sizing trough 31. Support rollers 33 are provided on both sides of the conveyor belt 20 at the positions of the abutment rollers 32. When the annular forming mold 21 reaches this position, its two sides are pressed downwards by the abutment rollers 31, while the middle portion, being suspended below and supported by the support rollers 33 on both sides, naturally concaves to form a temporary material storage and sizing trough 31. Alternatively, an arc-shaped support groove structure can be provided on the conveyor belt 20 below this middle portion to support the formed material storage and sizing trough 31. The slurry can be pre-injected or flowed into this tank. As the mold moves forward with the conveyor belt, a certain amount of slurry is carried away, completing the initial feeding and forming a stable trough that moves with the mold, thus achieving a preliminary and controllable feeding process. As an optimization, a rotating shaft 34 is rotatably mounted on the lower end of the roller frame 31, located between the two sets of pressure rollers 31. A swing rod 35 is provided on the rotating shaft 34, and a uniform rod 36 that can extend into the slurry storage tank 31 is provided on the lower end of the swing rod 35. The uniform rod 36 can be immersed in the slurry in the slurry storage tank 31 and swing slightly, playing a role in preliminary stirring and venting.
[0033] See Figure 5In a preferred embodiment, the transverse drive component 42 includes a slide rail 45 mounted on a mounting frame 41, a sliding seat 47 slidably mounted on the slide rail 46, and a drive motor 48 mounted on the sliding seat 47. The mounting frame 41 is equipped with a rack, and the output end of the drive motor 48 is equipped with a gear that meshes with the rack. A grouting frame and a spreading frame are sequentially arranged on both sides of the sliding seat 47 along the conveying direction of the conveyor belt 20. A grouting head 43 is mounted on the grouting frame, and a spreading head 44 is mounted on the spreading frame. The drive motor 48 drives the gear to rotate, meshing with the rack fixed on the mounting frame, thereby causing the sliding seat 47 to reciprocate along the slide rail 46. The grouting head 43 is connected to the outlet of the mixer 14 of the batching unit 10 via a hose to replenish the grout. As an optimization, the spreading head 44 includes an elastic rod 44a located at the lower end of the spreading frame, and a leveling rod 44b is provided at the lower end of the elastic rod 44a. The leveling rod 44b can be inserted into the flexible ceramic tile slurry layer on the annular forming mold 21. The elastic rod 44a can be a spring or a rubber block, and the leveling rod 44b is a rod-shaped structure, or it can be a scraper, brush roller, or other components with leveling function.
[0034] The specific working process and function of the fabric spreading component 40 are as follows: When the annular forming mold 21 with a preliminary slurry layer passes by, the lateral drive component 42 drives the injection head 43 and the spreading head 44 to move back and forth synchronously. First, the injection head 43 can dynamically compensate for the uneven material level that may occur in the slurry storage tank 31 due to the movement of the mold, ensuring that the total amount of slurry is sufficient and the distribution at the front and rear ends is uniform. Then, the mold that has completed the preliminary slurry feeding is conveyed forward to the area of the spreading head 44. Under the elastic pressure of the elastic rod 44a, the lower end of the spreading rod 44b of the spreading head 44 will insert into the slurry layer to a certain depth. During the lateral movement, the spreading rod 44b will break up any clumps that may exist in the slurry and push the excess slurry forward or to the sides, while smoothing the surface of the slurry. This process can effectively eliminate air bubbles in the slurry and make the slurry layer reach a preset, extremely uniform thickness. Its reciprocating motion ensures the uniformity of the entire mold width direction.
[0035] See Figure 6In a preferred embodiment, the fabric spreading assembly 50 includes a spreading roller 51 wound with a back net. A support 52 is provided on the conveyor belt 20 at the output end of the fabric spreading assembly 40. The spreading roller 51 is rotatably mounted on the support 52. A roller shaft 53 is rotatably mounted on the support 52 at the back net output end of the spreading roller 51. Rollers are provided at both ends of the roller shaft 53. The roller shaft 53 can cooperate with the annular forming mold 21 to roll the back net released by the spreading roller 40. After the back net is drawn out, it passes through the roller shaft 53, and the rollers at both ends of the roller shaft 53 press against the two sides of the annular forming mold 21. When the mold carrying the spread slurry layer passes by, the back net is accurately laid on the slurry surface. Subsequently, under the weight of the roller shaft 53 and the limiting force of the rollers, the back net is rolled, making it well embedded in the slurry layer, which can enhance product strength and ensure the strong bond between the back net and the substrate.
[0036] Furthermore, the drying oven 60 can employ heating methods such as hot air circulation, infrared, or microwave to bake the wet blanks after the mesh is laid at a low temperature, causing the slurry to solidify and shape, forming continuous flexible ceramic tile sheets. This is prior art; for details, please refer to a soft ceramic tile production baking device disclosed in patent number CN202510298825.4, which will not be described in detail here.
[0037] See Figure 7In a preferred embodiment, a peeling head 80 is further included. The peeling head 80 is mounted on the output end of the conveyor belt 20 via a peeling frame 81. The end of the peeling head 80 abuts against the outer surface of the annular forming mold 21 to peel off the dried, molded flexible ceramic tile from the annular forming mold 21. The peeling head 80 can be a wedge-shaped plate, utilizing the wedge principle to achieve initial separation, or it can be an actively or passively rotating roller, its surface covered with rubber or silicone, achieving peeling through rolling friction and a teasing action, which is more gentle on the product surface. The peeling head 80 can be mounted on a finely adjustable mechanism, such as a spring-loaded mounting base, to accommodate the thickness tolerance and runout of the annular forming mold 21, ensuring effective contact without damaging the mold. When the annular forming mold 21 carrying the cured flexible ceramic tile is conveyed to the end of the conveyor belt 20, its direction of movement changes because the annular forming mold 21 usually bypasses a drive roller. This allows the end of the peeling head 80 to gently abut against the outer surface of the annular forming mold 21, i.e., the side with the formed flexible ceramic tile, at a specific angle. Due to the bending and movement of the mold 21, the formed flexible ceramic tile will tend to separate from the surface of the mold 21. The peeling head 80 takes advantage of this tendency and inserts its sharp or wedge-shaped end into the gap between the flexible ceramic tile and the mold 21. As the mold 21 continues to move, the peeling head 80 can smoothly and continuously peel the formed flexible ceramic tile off the annular forming mold 21. The peeled flexible ceramic tile is then guided to the cutting table 70 for cutting.
[0038] In a preferred embodiment, a cutting table 70 is located at the end of the production line. The cutting table 70 includes a base frame 71, on which a conveyor frame 72 is movably mounted. A longitudinal cutting mechanism 73 is provided at the input end of the conveyor frame 72. At least two sets of positioning mechanisms 74 are spaced apart along the conveying direction on the conveyor frame 72. A transverse cutting mechanism 75 is provided on the conveyor frame 72 between two adjacent sets of positioning mechanisms 74 and at the output end of the longitudinal cutting mechanism 73. The longitudinal cutting mechanism 73 includes a motor-driven cutting shaft with multiple disc cutters spaced apart axially on it for longitudinal cutting of flexible ceramic tiles. The positioning mechanisms 74 can be pneumatic clamping devices for clamping and positioning the sheets. The transverse cutting mechanism 75 can be a gantry cutter, as described in prior art CN202310030186.4, a dual-head gantry laser cutting device. Furthermore, the base frame 71 is provided with slide rails 76 on both sides along its length. The conveyor frame 72 is mounted on the slide rails 76 via sliding seats 77. That is, the conveyor frame 72 can move along the slide rails 76 to receive flexible ceramic tiles near the end of the conveyor belt 20, or to form a flexible ceramic tile unloading station away from the end of the conveyor belt 20, so that workers can unload the finished flexible ceramic tiles after cutting.
[0039] This utility model discloses an MCM eco-friendly flexible ceramic tile production line. Through the cyclic movement of the annular forming mold 21 on the conveyor belt 20, combined with the coordinated operation of various functional components, it integrates processes such as feeding, leveling, mesh laying, drying, and cutting into a continuous production line, achieving continuous and automated production and significantly improving production efficiency. To ensure product quality, a design combining material storage and slurry application with dynamic replenishment and leveling is adopted. This ensures the stability of slurry application and the uniformity of leveling, effectively eliminating air bubbles, resulting in a finished product with consistent thickness, dense structure, and a smooth surface, significantly improving product consistency and mechanical properties.
[0040] The above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Any modifications or equivalent substitutions that do not depart from the spirit and scope of this utility model should be covered within the scope of the technical solution of this utility model.
Claims
1. A MCM eco-flexible tile production line, characterized in that, include The batching unit is used to prepare flexible ceramic tile slurry; A conveyor belt on which an annular forming mold is rotatably mounted; A material storage and slurrying assembly is installed at the input end of the conveyor belt. The material storage and slurrying assembly enables the annular forming mold to form a material storage and slurrying trough so that the slurry is fed onto the annular forming mold that is being conveyed. The fabric spreading assembly has a mounting frame at the output end of the conveyor belt of the slurry spreading assembly. The mounting frame has a transverse drive component whose output end can reciprocate along the length of the mounting frame. The output end of the transverse drive component has a grouting head and a spreading head. The input end of the grouting head is connected to the output end of the batching unit, and the output end can inject slurry into the slurry storage tank. The lower end of the spreading head can be inserted into the flexible ceramic tile slurry layer on the annular forming mold. The back netting and material spreading component is located at the output end of the conveyor belt of the material spreading component and is used to lay the back net into the flexible ceramic tile slurry layer on the annular forming mold. The drying chamber is located at the output end of the conveyor belt, where the mesh feeding and leveling component is positioned. The cutting table, located at the output end of the conveyor belt, is capable of receiving and cutting the flexible ceramic tiles output from the drying chamber.
2. A MCM eco-flexible tile production line according to claim 1, characterized in that, The batching unit includes a dry material feeding unit, a dry material premixing tank, a wet material feeding unit, and a mixer. The output end of the dry material feeding unit is connected to the input end of the dry material premixing tank. The output ends of both the dry material premixing tank and the wet material feeding unit are connected to the input end of the mixer. The output end of the mixer is connected to the input end of the grouting head.
3. A MCM eco-flexible tile production line according to claim 1, characterized in that, The material storage and sizing assembly includes a roller frame mounted on the input end of the conveyor belt. The roller frame is rotatably mounted with pressure rollers on both sides of the conveyor belt. The two sets of pressure rollers can press down on both sides of the annular forming mold to form a material storage and sizing trough. The conveyor belt is provided with support rollers on both sides of the pressure rollers.
4. A MCM eco-friendly flexible tile production line as claimed in claim 3, wherein, A rotating shaft is rotatably mounted on the lower end of the roller frame and located between the two sets of pressure rollers. A swing rod is provided on the rotating shaft, and a uniform rod that can extend into the slurry storage tank is provided on the lower end of the swing rod.
5. The MCM eco-friendly flexible ceramic tile production line according to claim 1, characterized in that, The transverse drive includes a slide rail mounted on a mounting frame, a sliding seat slidably mounted on the slide rail, and a drive motor mounted on the sliding seat. The mounting frame is provided with a rack, and the output end of the drive motor is provided with a gear that meshes with the rack. The sliding seat is provided with a grouting frame and a spreading frame on both sides. The grouting head is located on the grouting frame, and the spreading head is located on the spreading frame.
6. A MCM eco-flexible tile production line according to claim 5, characterized in that, The spreading head includes an elastic rod located at the lower end of the spreading frame, and a material leveling rod is provided at the lower end of the elastic rod. The material leveling rod can be inserted into the flexible ceramic tile slurry layer on the annular forming mold.
7. A MCM eco-friendly flexible tile production line as claimed in claim 1 wherein, The net-laying and even-shaping assembly includes a net-laying roller wound with a back net. The conveyor belt is provided with a support at the output end of the fabric spreading assembly. The net-laying roller is rotatably mounted on the support. The support is rotatably mounted with a roller shaft at the back net output end of the net-laying roller. Rollers are provided at both ends of the roller shaft. The roller shaft can cooperate with the annular forming mold to roll the back net released by the net-laying roller.
8. A MCM eco-friendly flexible tile production line as claimed in claim 1 wherein, It also includes a peeling head, which is mounted on the output end of the conveyor belt via a peeling frame. The end of the peeling head can abut against the outer surface of the annular forming mold to peel off the dried shaped flexible ceramic tile from the annular forming mold.
9. A MCM eco-friendly flexible tile production line as claimed in claim 1 wherein, The cutting table includes a base frame, on which a conveyor frame is movably mounted. A longitudinal cutting mechanism is provided at the input end of the conveyor frame. At least two sets of positioning mechanisms are spaced apart along the conveying direction on the conveyor frame. A transverse cutting mechanism is provided on the conveyor frame between two adjacent sets of positioning mechanisms and at the output end of the longitudinal cutting mechanism.
10. A MCM eco-flexible tile production line according to claim 9, characterized in that, The base frame is equipped with slide rails on both sides along its length, and the conveyor frame is mounted on the slide rails via sliding seats.
Citation Information
Patent Citations
A dual-head gantry laser cutting device
CN115958312B
Soft porcelain production baking device
CN120084114A
Soft porcelain production line conveyer belt type mould
CN207549037U